Claims
- 1. A method of transcribing RNA, using a double-stranded DNA as a template, comprising:
- (a) hybridizing said double-stranded DNA with a least one oligo-nucleic acid analogue to form a hybrid having a transcription initiation site, wherein the hybrid is more stable against heat denaturation than a hybrid between a conventional deoxyribonucleotide corresponding in sequence to said at least one oligo-nucleic acid analogue;
- (b) combining said hybrid with a prokaryotic DNA dependent RNA polymerase and a plurality of nucleoside triphosphates; and
- (c) thereafter transcribing said RNA by attaching together a plurality of nucleoside triphosphates from step (b), using said double-stranded DNA as a template.
- 2. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue comprises 5 to 60 base pairs.
- 3. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue comprises 10 to 20 base pairs.
- 4. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue comprises 17 to 18 base pairs.
- 5. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue is a peptide nucleic acid.
- 6. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue comprises a plurality of nucleotide bases attached to a backbone, said backbone comprising a polymer selected from the group consisting of polyaminoethylglycine, polyamide, polythioamide, polysulfinamide and polysulfonamide.
- 7. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue comprises a polyamide backbone and a plurality of ligands, each of said plurality of ligands being bonded directly or indirectly to an aza nitrogen atom in said polyamide backbone, wherein a plurality of the ligands bear at least one nitrogen atom and each of said plurality of ligands which bears at least one nitrogen atom is separated from another of said plurality of ligands which bears at least one nitrogen atom by from 4 to 8 intervening atoms in said polyamide backbone.
- 8. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue hybridizes with one strand of said double-stranded DNA having a sequence which is complementary to said at least one oligo-nucleic acid analogue, thereby displacing the other strand of said double-stranded DNA from said one strand of said double-stranded DNA.
- 9. The method according to claim 1, wherein said at least one oligo-nucleic acid analogue is a compound of formula 1: ##STR4## wherein: n is at least 2,
- each of L.sup.1 -L.sup.n is independently selected from the group consisting of hydrogen, hydroxy, (C.sub.1 -C.sub.4)alkanoyl, a naturally occurring nucleobase, a non-naturally occurring nucleobase, an aromatic moiety, a DNA intercalator, a nucleobase-binding group, a heterocyclic moiety, and a reporter ligand;
- each of C.sup.1 -C.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.y, (CHR.sup.6 CHR.sup.7).sub.y and (CR.sup.6 R.sup.7 CH.sub.2).sub.y
- wherein R.sup.6 is hydrogen and R.sup.7 is selected from the group consisting of one of the side chains of naturally occurring alpha amino acids, or
- R.sup.6 and R.sup.7 are independently selected from the group consisting of hydrogen, (C.sub.2 -C.sub.6)alkyl, aryl, aralkyl, heteroaryl, hydroxy, (C.sub.1 -C.sub.6)alkoxy, (C.sub.1 -C.sub.6)alkylthio, NR.sup.3 R.sup.4 and SR.sup.5, wherein R.sup.3 and R.sup.4 are as defined below, and wherein R.sup.5 is selected from the group consisting of hydrogen, (C.sub.1 -C.sub.6)alkyl, hydroxy, alkoxy and alkylthio-substituted (C.sub.1 -C.sub.6)alkyl, or
- R.sup.6 and R.sup.7, taken together, form an alicyclic or heterocyclic system;
- each of D.sup.1 -D.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sup.z, (CH.sub.2 CR.sup.6 R.sup.7).sub.z and (CHR.sup.6 CHR.sup.7).sub.z
- wherein R.sup.6 and R.sup.7 are as defined above;
- each of y and z is zero or an integer from 1 to 10, y+z being at least 2;
- each of G.sup.1 -G.sup.n-1 is independently selected from the group consisting of --NR.sup.3 CO--, --CONR.sup.3 --, --NR.sup.3 CS--, --CSNR.sup.3 --, --NR.sup.3 SO--, --SONR.sup.3 --, --NR.sup.3 SO.sub.2 -- and --SO.sub.2 NR.sup.3 --, where R.sup.3 is as defined below;
- each of A.sup.1 -A.sup.n and B.sup.1 -B.sup.n are selected such that:
- (a) A is selected from the group consisting of a group of formula (IIa), (IIb), (IIc) and (IId) , and B is N or R.sup.3 N.sup.+, or
- (b) A is a group of formula (IId) and B is CH; ##STR5## wherein: X is selected from the group consisting of O, S, Se, NR.sup.3, CH.sub.2 and C(CH.sub.3).sub.2 ;
- Y is selected from the group consisting of a single bond, O, S and NR.sup.4 ;
- each of p and q is zero or an integer from 1 to 5;
- each of r and s is zero or an integer from 1 to 5;
- each of R.sup.1 and R.sup.2 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio, (f) amino and (g) halogen;
- each of R.sup.3 and R.sup.4 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio and (f) amino;
- Q is selected from the group consisting of --CO.sub.2 H, --CONR'R", --SO.sub.3 H, --SO.sub.2 NR'R", an activated derivative of --CO.sub.2 H and an activated derivative of --SO.sub.3 H; and
- I is NR"'R"" or --NR"'C(O)R"", wherein R', R", R"' and R"" are independently selected from the group consisting of hydrogen, alkyl, an amino protecting group, a reporter ligand, an intercalator, a chelator, a peptide, a protein, a carbohydrate, a lipid, a steroid, a nucleoside, a nucleotide, a nucleotide diphosphate, a nucleotide triphosphate, an oligonucleotide, an oligonucleoside and a soluble or non-soluble polymer.
- 10. A method of transcribing RNA, using a double-stranded DNA as a template, comprising:
- (a) hybridizing said double-stranded DNA with a first oligo-nucleic acid analogue and a second oligo-nucleic acid analogue to form a hybrid, each oligo-nucleic acid analogue forming a transcription initiation site with said double-stranded DNA, wherein said first oligo-nucleic acid analogue is hybridized with said double-stranded DNA at a first location thereon and said second oligo-nucleic acid analogue is hybridized with said double-stranded DNA at a second location thereon, said first location being on the same or a different strand of said double-stranded DNA, in relation to said second location;
- (b) combining said hybrid with a DNA dependent RNA polymerase and a plurality of nucleoside triphosphates; and
- (c) thereafter transcribing said RNA by attaching together a plurality of nucleoside triphosphates from step (b), using said double-stranded DNA as a template.
- 11. The method according to claim 10, wherein said first location is from 0 to 10 base pairs of said double-stranded DNA from said second location.
- 12. The method according to claim 10, wherein said first location is from 0 to 5 base pairs of said double-stranded DNA from said second location.
- 13. The method according to claim 9, wherein 2<y+z.ltoreq.10.
- 14. The method according to claim 9, wherein said at least one oligo-nucleic acid analogue is a compound selected from the group consisting of formula III, ##STR6## wherein: each L is independently selected from the group consisting of hydrogen, phenyl, a heterocyclic moiety, at least one naturally occurring nucleobase, and at least one non-naturally occurring nucleobase;
- each R.sup.7 is independently selected from the group consisting of hydrogen and one of the side chains of naturally occurring alpha amino acids;
- n is an integer greater than 1,
- each of k, l, and m is, independently, zero or an integer from 1 to 5;
- each p is zero or 1;
- R.sup.h is one of OH, NH.sub.2 and --NHLysNH.sub.2 ; and
- R.sup.i is H or COCH.sub.3.
- 15. A method of detecting a double-stranded DNA, comprising:
- (a) hybridizing said double-stranded DNA with a least one oligo-nucleic acid analogue to form a hybrid having a transcription initiation site, wherein the hybrid is more stable against heat denaturation than a hybrid between a conventional deoxyribonucleotide corresponding in sequence to said at least one oligo-nucleic acid analogue;
- (b) combining said hybrid with a prokaryotic DNA dependent RNA polymerase and a plurality of nucleoside triphosphates;
- (c) thereafter transcribing RNA by attaching together a plurality of nucleoside triphosphates from step (b), using said double-stranded DNA as a template; and
- (d) determining said double-stranded DNA by detecting said RNA produced in step (c).
- 16. The method according to claim 15, wherein said detecting step (d) comprises hybridizing said RNA with a nucleic acid probe having a sequence which is complementary to said RNA.
- 17. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue comprises 5 to 60 base pairs.
- 18. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue comprises 10 to 20 base pairs.
- 19. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue comprises 17 to 18 base pairs.
- 20. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue is a peptide nucleic acid.
- 21. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue comprises a plurality of nucleotide bases attached to a backbone, said backbone comprising a polymer selected from the group consisting of polyaminoethylglycine, polyamide, polythioamide, polysulfinamide and polysulfonamide.
- 22. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue comprises a polyamide backbone and a plurality of ligands, each of said plurality of ligands being bonded directly or indirectly to an aza nitrogen atom in said polyamide backbone, wherein each ligand-binding aza nitrogen atom is separated from an adjacent ligand-binding aza nitrogen atom by from 4 to 8 intervening atoms in said polyamide backbone.
- 23. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue hybridizes with one strand of said double-stranded DNA having a sequence which is complementary to said at least one oligo-nucleic acid analogue, thereby displacing the other strand of said double-stranded DNA from said one strand of said double-stranded DNA.
- 24. The method according to claim 15, wherein said at least one oligo-nucleic acid analogue is a compound of formula 1: ##STR7## wherein: n is at least 2,
- each of L.sup.1 -L.sup.n is independently selected from the group consisting of hydrogen, hydroxy, (C.sub.1 -C.sub.4)alkanoyl, a naturally occurring nucleobase, a non-naturally occurring nucleobase, an aromatic moiety, a DNA intercalator, a nucleobase-binding group, a heterocyclic moiety, and a reporter ligand;
- each of C.sup.1 -C.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.y, (CHR.sup.6 CHR.sup.7).sub.y and (CR.sup.6 R.sup.7 CH.sub.2).sub.y
- wherein R.sup.6 is hydrogen and R.sup.7 is selected from the group consisting of one of the side chains of naturally occurring alpha amino acids, or
- R.sup.6 and R.sup.7 are independently selected from the group consisting of hydrogen, (C.sub.2 -C.sub.6)alkyl, aryl, aralkyl, heteroaryl, hydroxy, (C.sub.1 -C.sub.6)alkoxy, (C.sub.1 -C.sub.6)alkylthio, NR.sup.3 R.sup.4 and SR.sup.5, wherein R.sup.3 and R.sup.4 are as defined below, and wherein R.sup.5 is selected from the group consisting of hydrogen, (C.sub.1 -C.sub.6)alkyl, hydroxy, alkoxy and alkylthio-substituted (C.sub.1 -C.sub.6)alkyl, or
- R.sup.6 and R.sup.7, taken together, form an alicyclic or heterocyclic system;
- each of D.sup.1 -D.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.z, (CH.sub.2 CR.sup.6 R.sup.7).sub.z and (CHR.sup.6 CHR.sup.7).sub.z
- wherein R.sup.6 and R.sup.7 are as defined above;
- each of y and z is zero or an integer from 1 to 10, y+z being at least 2;
- each of G.sup.1 -G.sup.n-1 is independently selected from the group consisting of --NR.sup.3 CO--, --CONR.sup.3 --, --NR.sup.3 CS--, --CSNR.sup.3 --, --NR.sup.3 SO--, --SONR.sup.3 --, --NR.sup.3 SO.sub.2 -- and --SO.sub.2 NR.sup.3 --, where R.sup.3 is as defined below;
- each of A.sup.1 -A.sup.n and B.sup.1 -B.sup.n are selected such that:
- (a) A is selected from the group consisting of a group of formula (IIa), (IIb), (IIc) and (IId), and B is N or R.sup.3 N.sup.+, or
- (b) A is a group of formula (IId) and B is CH; ##STR8## wherein: X is selected from the group consisting of O, S, Se, NR.sup.3, CH.sub.2 and C(CH.sub.3).sub.2 ;
- Y is selected from the group consisting of a single bond, O, S and NR.sup.4 ;
- each of p and q is zero or an integer from 1 to 5;
- each of r and s is zero or an integer from 1 to 5;
- each of R.sup.1 and R.sup.2 is independently selected from the group consisting of (a) hydrogen, (b) (C.sup.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio, (f) amino and (g) halogen;
- each of R.sup.3 and R.sup.4 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio and (f) amino;
- Q is selected from the group consisting of --CO.sub.2 H, --CONR'R", --SO.sub.3 H, --SO.sub.2 NR'R", an activated derivative of --CO.sub.2 H and an activated derivative of --SO.sub.3 H; and
- I is NR"'R'' or --NR"' C(O)R"", wherein R', R", R"' and R"" are independently selected from the group consisting of hydrogen, alkyl, an amino protecting group, a reporter ligand, an intercalator, a chelator, a peptide, a protein, a carbohydrate, a lipid, a steroid, a nucleoside, a nucleotide, a nucleotide diphosphate, a nucleotide triphosphate, an oligonucleotide, an oligonucleoside and a soluble or non-soluble polymer.
- 25. The method according to claim 16, wherein said nucleic acid probe comprises a detectable label.
- 26. The method according to claim 24, wherein 2<y+z .ltoreq.10.
- 27. The method according to claim 24, wherein said at least one oligo-nucleic acid analogue is a compound selected from the group consisting of formula III, ##STR9## wherein: each L is independently selected from the group consisting of hydrogen, phenyl, a heterocyclic moiety, at least one naturally occurring nucleobase, and at least one non-naturally occurring nucleobase;
- each R.sup.7 is independently selected from the group consisting of hydrogen and one of the side chains of naturally occurring alpha amino acids;
- n is an integer greater than 1,
- each of k, l, and m is, independently, zero or an integer from 1 to 5;
- each p is zero or 1;
- R.sup.h is one of OH, NH.sub.2 and --NHLysNH.sub.2 ; and
- R.sup.i is H or COCH.sub.3.
- 28. A method of amplifying RNA, comprising:
- (a) hybridizing a double-stranded DNA with at least one oligo-nucleic acid analogue forming a transcription initiation site with said double-stranded DNA, to form a hybrid;
- (b) combining said hybrid formed in step (a) with a DNA dependent RNA polymerase and a plurality of nucleoside triphosphates;
- (c) thereafter transcribing RNA by attaching together a plurality of nucleoside triphosphates from step (b), using said double-stranded DNA as a template;
- (d) hybridizing said RNA produced in step (c) with a nucleic acid primer, to form a hybrid;
- (e) extending said nucleic acid primer of said hybrid formed in step (d), using said RNA as a template, to produce an extension product; and
- (f) transcribing RNA, using the extension product produced in step (e) as a template.
- 29. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue comprises 5 to 60 base pairs.
- 30. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue comprises 10 to 20 base pairs.
- 31. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue comprises 17 to 18 base pairs.
- 32. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue is a peptide nucleic acid.
- 33. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue comprises a plurality of nucleotide bases attached to a backbone, said backbone comprising a polymer selected from the group consisting of polyaminoethylglycine, polyamide, polythioamide, polysulfinamide and polysulfonamide.
- 34. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue comprises a polyamide backbone and a plurality of ligands, each of said plurality of ligands being bonded directly or indirectly to an aza nitrogen atom in said polyamide backbone, wherein each ligand-binding aza nitrogen atom is separated from an adjacent ligand-binding aza nitrogen atom by from 4 to 8 intervening atoms in said polyamide backbone.
- 35. The method according to claim 28, wherein, in step (a), said at least one oligo-nucleic acid analogue hybridizes with one strand of said double-stranded DNA having a sequence which is complementary to said at least one oligo-nucleic acid analogue, thereby displacing the other strand of said double-stranded DNA from said one strand of said double-stranded DNA.
- 36. The method according to claim 28, wherein said at least one oligo-nucleic acid analogue is a compound of formula 1: ##STR10## wherein: n is at least 2,
- each of L.sup.1 -L.sup.n is independently selected from the group consisting of hydrogen, hydroxy, (C.sub.1 -C.sub.4)alkanoyl, a naturally occurring nucleobase, a non-naturally occurring nucleobase, an aromatic moiety, a DNA intercalator, a nucleobase-binding group, a heterocyclic moiety, and a reporter ligand;
- each of C.sup.1 -C.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.y, (CHR.sup.6 CHR.sup.7).sub.y and (CR.sup.6 R.sup.7 CH.sub.2).sub.y
- wherein R.sup.6 is hydrogen and R.sup.7 is selected from the group consisting of one of the side chains of naturally occurring alpha amino acids, or
- R.sup.6 and R.sup.7 are independently selected from the group consisting of hydrogen, (C.sub.2 -C.sub.6)alkyl, aryl, aralkyl, heteroaryl, hydroxy, (C.sub.1 -C.sub.6)alkoxy, (C.sub.1 -C.sub.6)alkylthio, NR.sup.3 R.sup.4 and SR.sup.5, wherein R.sup.3 and R.sup.4 are as defined below, and wherein R.sup.5 is selected from the group consisting of hydrogen, (C.sub.1 -C.sub.6)alkyl, hydroxy, alkoxy and alkylthio-substituted (C.sub.1 -C.sub.6)alkyl, or
- R.sup.6 and R.sup.7, taken together, form an alicyclic or heterocyclic system;
- each of D.sup.1 -D.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.z, (CH.sub.2 CR.sup.6 R.sup.7).sub.z and (CHR.sup.6 CHR.sup.7).sub.z
- wherein R.sup.6 and R.sup.7 are as defined above;
- each of y and z is zero or an integer from 1 to 10, y+z being at least 2;
- each of G.sup.1 -G.sup.n-1 is independently selected from the group consisting of --NR.sup.3 CO--, --CONR.sup.3 --, --NR.sup.3 CS--, --CSNR.sup.3 --, --NR.sup.3 SO--, --SONR.sup.3 --, --NR.sup.3 SO.sub.2 -- and --SO.sub.2 NR.sup.3 --, where R.sup.3 is as defined below;
- each of A.sup.1 -A.sup.n and B.sup.1 -B.sup.n are selected such that:
- (a) A is selected from the group consisting of a group of formula (IIa), (IIb), (IIc) and (IId), and B is N or R.sup.3 N.sup.+, or
- (b) A is a group of formula (IId) and B is CH; ##STR11## X is selected from the group consisting of O, S, Se, NR.sup.3, CH.sub.2 and C(CH.sub.3).sub.2 ;
- Y is selected from the group consisting of a single bond, O, S and NR.sub.4 ;
- each of p and q is zero or an integer from 1 to 5;
- each of r and s is zero or an integer from 1 to 5;
- each of R.sup.1 and R.sup.2 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio, (f) amino and (g) halogen;
- each of R.sup.3 and R.sup.4 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio and (f) amino;
- Q is selected from the group consisting of --CO.sub.2 H, --CONR'R", --SO.sub.3 H, --SO.sub.2 NR'R", an activated derivative of --CO.sub.2 H and an activated derivative of --SO.sub.3 H; and
- I is NR"'R"" or --NR"'C (O)R"", wherein R', R", R"' and R"" are independently selected from the group consisting of hydrogen, alkyl, an amino protecting group, a reporter ligand, an intercalator, a chelator, a peptide, a protein, a carbohydrate, a lipid, a steroid, a nucleoside, a nucleotide, a nucleotide diphosphate, a nucleotide triphosphate, an oligonucleotide, an oligonucleoside and a soluble or non-soluble polymer.
- 37. The method according to claim 36, wherein 2<y+z.ltoreq.10.
- 38. The method according to claim 36, wherein said at least one oligo-nucleic acid analogue is a compound selected from the group consisting of formula III, ##STR12## wherein each L is independently selected from the group consisting of hydrogen, phenyl, a heterocyclic moiety, at least one naturally occurring nucleobase, and at least one non-naturally occurring nucleobase;
- each R.sup.7 is independently selected from the group consisting of hydrogen and one of the side chains of naturally occurring alpha amino acids;
- n is an integer greater than 1,
- each of k, l, and m is, independently, zero or an integer from 1 to 5;
- each p is zero or 1;
- R.sup.h is one of OH, NH.sub.2 and --NHLysNH.sub.2 ; and
- R.sup.i is H or COCH.sub.3.
- 39. A method of converting a starting nucleic acid into a double-stranded DNA template for transcribing RNA, comprising:
- (a) hybridizing said starting nucleic acid with first DNA oligonucleotide comprising a specific binding sequence, to form a first hybrid;
- (b) extending said DNA oligonucleotide of said first hybrid, using said starting nucleic acid as a template, to form a first extension hybrid comprising said starting nucleic acid and a first extension product;
- (c) denaturing said first extension hybrid formed in (b);
- (d) hybridizing said first extension product with a second DNA oligonucleotide comprising a sequence which is complementary to a portion of said first extension product;
- (e) extending said second DNA oligonucleotide using said first extension product as a template to form a second extension hybrid comprising said first extension product and said second extension product;
- (f) thereafter hybridizing said second extension hybrid with an oligo-nucleic acid analogue comprising a sequence which is complementary to said specific binding sequence, to form a double-stranded DNA template for transcribing RNA.
- 40. The method according to claim 39, wherein said starting nucleic acid is RNA.
- 41. The method according to claim 39, wherein said starting nucleic acid is DNA.
- 42. The method according to claim 39, wherein said first DNA oligonucleotide further comprises a nucleic acid sequence S1 which hybridizes with said starting nucleic acid toward the 3'-end of said starting nucleic acid.
- 43. The method according to claim 39, wherein said specific binding sequence comprises more than 8 nucleotides.
- 44. The method according to claim 39, wherein said specific binding sequence consists of a plurality of pyrimidine bases.
- 45. The method according to claim 39, wherein said oligo-nucleic acid analogue comprises 5 to 60 base pairs.
- 46. The method according to claim 39, wherein said oligo-nucleic acid analogue comprises 10 to 20 base pairs.
- 47. The method according to claim 39, wherein said oligo-nucleic acid analogue comprises 17 to 18 base pairs.
- 48. The method according to claim 39, wherein said oligo-nucleic acid analogue is a peptide nucleic acid.
- 49. The method according to claim 39, wherein said oligo-nucleic acid analogue comprises a plurality of nucleotide bases attached to a backbone, said backbone comprising a polymer selected from the group consisting of polyaminoethylglycine, polyamide, polythioamide, polysulfinamide and polysulfonamide.
- 50. The method according to claim 39, wherein said oligo-nucleic acid analogue comprises a polyamide backbone and a plurality of ligands, each of said plurality of ligands being bonded directly or indirectly to an aza nitrogen atom in said polyamide backbone, wherein each ligand-binding aza nitrogen atom is separated from an adjacent ligand-binding aza nitrogen atom by from 4 to 8 intervening atoms in said polyamide backbone.
- 51. The method according to claim 39, wherein said oligo-nucleic acid analogue is a compound of formula 1: ##STR13## wherein: n is at least 2,
- each of L.sup.1 -L.sup.n is independently selected from the group consisting of hydrogen, hydroxy, (C.sub.1 -C.sub.4)alkanoyl, a naturally occurring nucleobase, a non-naturally occurring nucleobase, an aromatic moiety, a DNA intercalator, a nucleobase-binding group, a heterocyclic moiety, and a reporter ligand;
- each of C.sup.1 -C.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.y, (CHR.sup.6 CHR.sup.7).sub.y and (CR.sup.6 R.sup.7 CH.sub.2).sub.y
- wherein R.sup.6 is hydrogen and R.sup.7 is selected from the group consisting of one of the side chains of naturally occurring alpha amino acids, or
- R.sup.6 and R.sup.7 are independently selected from the group consisting of hydrogen, (C.sub.2 -C.sub.6)alkyl, aryl, aralkyl, heteroaryl, hydroxy, (C.sub.1 -C.sub.6)alkoxy, (C.sub.1 -C.sub.6)alkylthio, NR.sup.3 R.sup.4 and SR.sup.5, wherein R.sup.3 and R.sup.4 are as defined below, and wherein R.sup.5 is selected from the group consisting of hydrogen, (C.sub.1 -C.sub.6)alkyl, hydroxy, alkoxy and alkylthio-substituted (C.sub.1 -C.sub.6)alkyl, or
- R.sup.6 and R.sup.7, taken together, form an alicyclic or heterocyclic system;
- each of D.sup.1 -D.sup.n is independently selected from the group consisting of (CR.sup.6 R.sup.7).sub.z, (CH.sub.2 CR.sup.6 R.sup.7).sub.z and (CHR.sup.6 CHR.sup.7).sub.z
- wherein R.sup.6 and R.sup.7 are as defined above;
- each of y and z is zero or an integer from 1 to 10, y+z being at least 2;
- each of G.sup.1 G.sup.n-1 is independently selected from the group consisting of --NR.sup.3 CO--, --CONR.sup.3 --, --NR.sup.3 CS--, --CSNR.sup.3 --, --NR.sup.3 SO--, --SONR.sup.3 --, --NR.sup.3 SO.sub.2 -- and --SO.sub.2 NR.sup.3 --, where R.sup.3 is as defined below;
- each of A.sup.1 -A.sup.n and B.sup.1 -B.sup.n are selected such that:
- (a) A is selected from the group consisting of a group of formula (IIa) , (IIb) , (IIc) and (IId), and B is N or R.sup.3 N.sup.+, or
- (b) A is a group of formula (IId) and B is CH; ##STR14## wherein: X is selected from the group consisting of O, S, Se, NR.sup.3, CH.sub.2 and C(CH.sub.3).sub.2 ;
- Y is selected from the group consisting of a single bond, O, S and NR.sub.4 ;
- each of p and q is zero or an integer from 1 to 5;
- each of r and s is zero or an integer from 1 to 5;
- each of R.sup.1 and R.sup.2 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio, (f) amino and (g) halogen;
- each of R.sup.3 and R.sup.4 is independently selected from the group consisting of (a) hydrogen, (b) (C.sub.1 -C.sub.4)alkyl which is unsubstituted or substituted by one of hydroxy-, alkoxy- and alkylthio-, (c) hydroxy, (d) alkoxy, (e) alkylthio and (f) amino;
- Q is selected from the group consisting of --CO.sub.2 H, --CONR'R", --SO.sub.3 H, --SO.sub.2 NR'R", an activated derivative of --CO.sub.2 H and an activated derivative of --SO.sub.3 H; and
- I is NR"'R"" or --NR"'C(O)R"", wherein R', R", R"' and R"" are independently selected from the group consisting of hydrogen, alkyl, an amino protecting group, a reporter ligand, an intercalator, a chelator, a peptide, a protein, a carbohydrate, a lipid, a steroid, a nucleoside, a nucleotide, a nucleotide diphosphate, a nucleotide triphosphate, an oligonucleotide, an oligonucleoside and a soluble or non-soluble polymer.
- 52. The method according to claim 42, wherein said nucleic acid sequence S1 comprises at least 15 nucleotides.
- 53. The method according to claim 42, wherein said nucleic acid sequence S1 comprises about 20 nucleotides.
- 54. The method according to claim 42, wherein said first DNA oligonucleotide further comprises a nucleic acid sequence S2 which hybridizes with said starting nucleic acid further upstream toward the 5'-end of said starting nucleic acid, compared to said nucleic acid sequence S1, wherein said specific binding sequence is located between said nucleic acid sequence S1 and said nucleic acid sequence S2.
- 55. The method according to claim 54, wherein said nucleic acid sequence S2 comprises more than 15 nucleotides.
- 56. The method according to claim 54, wherein said nucleic acid sequence S2 comprises about 40 nucleotides.
- 57. The method according to claim 43, wherein said specific binding sequence comprises about 10 nucleotides.
- 58. The method according to claim 51, wherein 2<y+z.ltoreq.10.
- 59. The method according to claim 51, wherein said at least one oligo-nucleic acid analogue is a compound selected from the group consisting of formula III, ##STR15## wherein each L is independently selected from the group consisting of hydrogen, phenyl, a heterocyclic moiety, at least one naturally occurring nucleobase, and at least one non-naturally occurring nucleobase;
- each R.sup.7 is independently selected from the group consisting of hydrogen and one of the side chains of naturally occurring alpha amino acids;
- n is an integer greater than 1,
- each of k, l, and m is, independently, zero or an integer from 1 to 5;
- each p is zero or 1;
- R.sup.h is one of OH, NH.sub.2 and --NHLysNH.sub.2 ; and
- R.sup.i is H or COCH.sub.3.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9324245 |
Nov 1993 |
GBX |
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CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of International Application PCT/EP94/03858, filed Nov. 22, 1994, and designating the U.S.
Non-Patent Literature Citations (2)
Entry |
Daube, et al. 1992, Science, vol. 258 pp. 1320-1324. |
Nielsen, et al. 1991, Science, vol. 254, pp. 1497-1500. |